Biomedical Engineering Reference
In-Depth Information
[235] T. Akasaka, et al., Modification of the dentin surface by using carbon nanotubes, Biomed. Mater. Eng.
19 (2009) 179 185.
[236] S. Karajanagi, et al., Protein-assisted solubilization of single-walled carbon nanotubes, Langmuir 22
(2006) 1392 1395.
[237] T. Meng, M. Latta, Physical properties of four acrylic denture base resins, J. Contemp. Dent. Practise
16 (2005) 93
100.
[238] Z. Zhou, Augmentation of PMMA denture base materials with multi-walled nanotubes, MS thesis,
Queen's University, Belfast, Ireland, 2009.
[239] B. Marr, Carbon Nanotube Augmentation of a Bone Cement Polymer, University of Kentucky,
Lexington, KY, 2007.
[240] F. Mei, et al., Improved biological characteristics of poly( L -lactic acid) electrospun membrane by incor-
poration of multiwalled carbon nanotubes/hydroxyapatite nanoprticles, Biomacromolecules 8 (2007)
3729 3735.
[241] J. Yang, et al., Growth of apatite on chitosan-multiwall carbon nanotube composite membranes, Appl.
Surf. Sci. 255 (2009) 8551 8555.
[242] X. Shi, et al., Fabrication of porous ultra-short single-walled carbon nanotube nanocomposite scaffolds
for bone tissue engineering, Biomaterials 28 (2007) 4078 4090.
[243] S. Edwards, et al., Tubular micro-scale multiwalled carbon nanotube-based scaffolds for tissue engi-
neering, Biomaterials 30 (2009) 1725 1731.
[244] J. Davis, et al., The immobilization of proteins in carbon nanotubes, Inorg. Chim. Acta 272 (1998)
261 266.
[245] D. Cui, Advances and prospects on biomolecules functionalized carbon nanotubes, J. Nanosci.
Nanotechnol. 7 (2007) 1298 1314.
[246] X. Li, et al., Maturation of osteoblast-like SaoS2 induced by carbon nanotubes, Biomed. Mater. 4
(2009) 015005.
[247] X. Li, et al., Effect of carbon nanotubes on cellular functions in vitro, J. Biomed. Res. 91 (2009)
132 139.
[248] A. Abarrategi, et al., Multiwall carbon nanotube scaffolds for tissue engineering purposes, Biomaterials
29 (2008) 94
102.
[249] X. Li, Y. Fan, F. Watari, Current investigations into carbon nanotubes for biomedical application,
Biomed. Mater. 5 (2010) 022001.
[250] C. Thomas, A. Ehrhardt, M. Kay, Progress and problems with the use of viral vectors for gene therapy,
Nat. Rev. Genet. 4 (2003) 346 358.
[251] A. Bianco, et al., Biomedical applications of functionalized carbon nanotubes, Chem. Commun. 5
(2005) 571 577.
[252] D. Pantarotto, et al., Functionalized carbon nanotubes for plasmid DNA gene delivery, Angew. Chem.
Int. Ed. 43 (2004) 5242 5246.
[253] K. Park, et al., Single-walled carbon nanotubes are a new class of ion channel blockers, J. Biol. Chem.
278 (2003) 50212 50216.
[254] A. Bhirde, et al., Targeted killing of cancer cells in vivo and in vitro with EGF-directed carbon
nanotube-based drug delivery, ACS Nano 3 (2009) 307 316.
[255]
J.M. Worle-Knirsch, K. Pulskamp, H.F. Krug, Oops they did it again! Carbon nanotubes hoax scientists
in viability assays, Nano Lett. 6 (2006) 1261 1268.
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